#define __PHYSICSFS_INTERNAL__
#include "physfs_internal.h"
#if PHYSFS_SUPPORTS_ZIP
#include <errno.h>
#include <time.h>
#include "physfs_miniz.h"
#define ZIP_READBUFSIZE (16 * 1024)
typedef enum
{
ZIP_UNRESOLVED_FILE,
ZIP_UNRESOLVED_SYMLINK,
ZIP_RESOLVING,
ZIP_RESOLVED,
ZIP_DIRECTORY,
ZIP_BROKEN_FILE,
ZIP_BROKEN_SYMLINK
} ZipResolveType;
typedef struct _ZIPentry
{
__PHYSFS_DirTreeEntry tree;
struct _ZIPentry *symlink;
ZipResolveType resolved;
PHYSFS_uint64 offset;
PHYSFS_uint16 version;
PHYSFS_uint16 version_needed;
PHYSFS_uint16 general_bits;
PHYSFS_uint16 compression_method;
PHYSFS_uint32 crc;
PHYSFS_uint64 compressed_size;
PHYSFS_uint64 uncompressed_size;
PHYSFS_sint64 last_mod_time;
PHYSFS_uint32 dos_mod_time;
} ZIPentry;
typedef struct
{
__PHYSFS_DirTree tree;
PHYSFS_Io *io;
int zip64;
int has_crypto;
} ZIPinfo;
typedef struct
{
ZIPentry *entry;
PHYSFS_Io *io;
PHYSFS_uint32 compressed_position;
PHYSFS_uint32 uncompressed_position;
PHYSFS_uint8 *buffer;
PHYSFS_uint32 crypto_keys[3];
PHYSFS_uint32 initial_crypto_keys[3];
z_stream stream;
} ZIPfileinfo;
#define ZIP_LOCAL_FILE_SIG 0x04034b50
#define ZIP_CENTRAL_DIR_SIG 0x02014b50
#define ZIP_END_OF_CENTRAL_DIR_SIG 0x06054b50
#define ZIP64_END_OF_CENTRAL_DIR_SIG 0x06064b50
#define ZIP64_END_OF_CENTRAL_DIRECTORY_LOCATOR_SIG 0x07064b50
#define ZIP64_EXTENDED_INFO_EXTRA_FIELD_SIG 0x0001
#define COMPMETH_NONE 0
#define UNIX_FILETYPE_MASK 0170000
#define UNIX_FILETYPE_SYMLINK 0120000
#define ZIP_GENERAL_BITS_TRADITIONAL_CRYPTO (1 << 0)
#define ZIP_GENERAL_BITS_IGNORE_LOCAL_HEADER (1 << 3)
static int zip_entry_is_tradional_crypto(const ZIPentry *entry)
{
return (entry->general_bits & ZIP_GENERAL_BITS_TRADITIONAL_CRYPTO) != 0;
}
static int zip_entry_ignore_local_header(const ZIPentry *entry)
{
return (entry->general_bits & ZIP_GENERAL_BITS_IGNORE_LOCAL_HEADER) != 0;
}
static PHYSFS_uint32 zip_crypto_crc32(const PHYSFS_uint32 crc, const PHYSFS_uint8 val)
{
int i;
PHYSFS_uint32 xorval = (crc ^ ((PHYSFS_uint32) val)) & 0xFF;
for (i = 0; i < 8; i++)
xorval = ((xorval & 1) ? (0xEDB88320 ^ (xorval >> 1)) : (xorval >> 1));
return xorval ^ (crc >> 8);
}
static void zip_update_crypto_keys(PHYSFS_uint32 *keys, const PHYSFS_uint8 val)
{
keys[0] = zip_crypto_crc32(keys[0], val);
keys[1] = keys[1] + (keys[0] & 0x000000FF);
keys[1] = (keys[1] * 134775813) + 1;
keys[2] = zip_crypto_crc32(keys[2], (PHYSFS_uint8) ((keys[1] >> 24) & 0xFF));
}
static PHYSFS_uint8 zip_decrypt_byte(const PHYSFS_uint32 *keys)
{
const PHYSFS_uint16 tmp = keys[2] | 2;
return (PHYSFS_uint8) ((tmp * (tmp ^ 1)) >> 8);
}
static PHYSFS_sint64 zip_read_decrypt(ZIPfileinfo *finfo, void *buf, PHYSFS_uint64 len)
{
PHYSFS_Io *io = finfo->io;
const PHYSFS_sint64 br = io->read(io, buf, len);
if (zip_entry_is_tradional_crypto(finfo->entry) && (br > 0))
{
PHYSFS_uint32 *keys = finfo->crypto_keys;
PHYSFS_uint8 *ptr = (PHYSFS_uint8 *) buf;
PHYSFS_sint64 i;
for (i = 0; i < br; i++, ptr++)
{
const PHYSFS_uint8 ch = *ptr ^ zip_decrypt_byte(keys);
zip_update_crypto_keys(keys, ch);
*ptr = ch;
}
}
return br;
}
static int zip_prep_crypto_keys(ZIPfileinfo *finfo, const PHYSFS_uint8 *crypto_header, const PHYSFS_uint8 *password)
{
PHYSFS_uint32 *keys = finfo->crypto_keys;
const ZIPentry *entry = finfo->entry;
const int usedate = zip_entry_ignore_local_header(entry);
const PHYSFS_uint8 verifier = (PHYSFS_uint8) ((usedate ? (entry->dos_mod_time >> 8) : (entry->crc >> 24)) & 0xFF);
PHYSFS_uint8 finalbyte = 0;
int i = 0;
keys[0] = 305419896;
keys[1] = 591751049;
keys[2] = 878082192;
while (*password)
zip_update_crypto_keys(keys, *(password++));
for (i = 0; i < 12; i++)
{
const PHYSFS_uint8 c = crypto_header[i] ^ zip_decrypt_byte(keys);
zip_update_crypto_keys(keys, c);
finalbyte = c;
}
if (finalbyte != verifier)
BAIL(PHYSFS_ERR_BAD_PASSWORD, 0);
memcpy(finfo->initial_crypto_keys, finfo->crypto_keys, 12);
return 1;
}
static voidpf zlibPhysfsAlloc(voidpf opaque, uInt items, uInt size)
{
return ((PHYSFS_Allocator *) opaque)->Malloc(items * size);
}
static void zlibPhysfsFree(voidpf opaque, voidpf address)
{
((PHYSFS_Allocator *) opaque)->Free(address);
}
static void initializeZStream(z_stream *pstr)
{
memset(pstr, '\0', sizeof (z_stream));
pstr->zalloc = zlibPhysfsAlloc;
pstr->zfree = zlibPhysfsFree;
pstr->opaque = &allocator;
}
static PHYSFS_ErrorCode zlib_error_code(int rc)
{
switch (rc)
{
case Z_OK: return PHYSFS_ERR_OK;
case Z_STREAM_END: return PHYSFS_ERR_OK;
case Z_ERRNO: return PHYSFS_ERR_IO;
case Z_MEM_ERROR: return PHYSFS_ERR_OUT_OF_MEMORY;
default: return PHYSFS_ERR_CORRUPT;
}
}
static int zlib_err(const int rc)
{
PHYSFS_setErrorCode(zlib_error_code(rc));
return rc;
}
static int readui64(PHYSFS_Io *io, PHYSFS_uint64 *val)
{
PHYSFS_uint64 v;
BAIL_IF_ERRPASS(!__PHYSFS_readAll(io, &v, sizeof (v)), 0);
*val = PHYSFS_swapULE64(v);
return 1;
}
static int readui32(PHYSFS_Io *io, PHYSFS_uint32 *val)
{
PHYSFS_uint32 v;
BAIL_IF_ERRPASS(!__PHYSFS_readAll(io, &v, sizeof (v)), 0);
*val = PHYSFS_swapULE32(v);
return 1;
}
static int readui16(PHYSFS_Io *io, PHYSFS_uint16 *val)
{
PHYSFS_uint16 v;
BAIL_IF_ERRPASS(!__PHYSFS_readAll(io, &v, sizeof (v)), 0);
*val = PHYSFS_swapULE16(v);
return 1;
}
static PHYSFS_sint64 ZIP_read(PHYSFS_Io *_io, void *buf, PHYSFS_uint64 len)
{
ZIPfileinfo *finfo = (ZIPfileinfo *) _io->opaque;
ZIPentry *entry = finfo->entry;
PHYSFS_sint64 retval = 0;
PHYSFS_sint64 maxread = (PHYSFS_sint64) len;
PHYSFS_sint64 avail = entry->uncompressed_size -
finfo->uncompressed_position;
if (avail < maxread)
maxread = avail;
BAIL_IF_ERRPASS(maxread == 0, 0);
if (entry->compression_method == COMPMETH_NONE)
retval = zip_read_decrypt(finfo, buf, maxread);
else
{
finfo->stream.next_out = buf;
finfo->stream.avail_out = (uInt) maxread;
while (retval < maxread)
{
const PHYSFS_uint32 before = (PHYSFS_uint32) finfo->stream.total_out;
int rc;
if (finfo->stream.avail_in == 0)
{
PHYSFS_sint64 br;
br = entry->compressed_size - finfo->compressed_position;
if (br > 0)
{
if (br > ZIP_READBUFSIZE)
br = ZIP_READBUFSIZE;
br = zip_read_decrypt(finfo, finfo->buffer, (PHYSFS_uint64) br);
if (br <= 0)
break;
finfo->compressed_position += (PHYSFS_uint32) br;
finfo->stream.next_in = finfo->buffer;
finfo->stream.avail_in = (unsigned int) br;
}
}
rc = zlib_err(inflate(&finfo->stream, Z_SYNC_FLUSH));
retval += (finfo->stream.total_out - before);
if (rc != Z_OK)
break;
}
}
if (retval > 0)
finfo->uncompressed_position += (PHYSFS_uint32) retval;
return retval;
}
static PHYSFS_sint64 ZIP_write(PHYSFS_Io *io, const void *b, PHYSFS_uint64 len)
{
BAIL(PHYSFS_ERR_READ_ONLY, -1);
}
static PHYSFS_sint64 ZIP_tell(PHYSFS_Io *io)
{
return ((ZIPfileinfo *) io->opaque)->uncompressed_position;
}
static int ZIP_seek(PHYSFS_Io *_io, PHYSFS_uint64 offset)
{
ZIPfileinfo *finfo = (ZIPfileinfo *) _io->opaque;
ZIPentry *entry = finfo->entry;
PHYSFS_Io *io = finfo->io;
const int encrypted = zip_entry_is_tradional_crypto(entry);
BAIL_IF(offset > entry->uncompressed_size, PHYSFS_ERR_PAST_EOF, 0);
if (!encrypted && (entry->compression_method == COMPMETH_NONE))
{
PHYSFS_sint64 newpos = offset + entry->offset;
BAIL_IF_ERRPASS(!io->seek(io, newpos), 0);
finfo->uncompressed_position = (PHYSFS_uint32) offset;
}
else
{
if (offset < finfo->uncompressed_position)
{
z_stream str;
initializeZStream(&str);
if (zlib_err(inflateInit2(&str, -MAX_WBITS)) != Z_OK)
return 0;
if (!io->seek(io, entry->offset + (encrypted ? 12 : 0)))
return 0;
inflateEnd(&finfo->stream);
memcpy(&finfo->stream, &str, sizeof (z_stream));
finfo->uncompressed_position = finfo->compressed_position = 0;
if (encrypted)
memcpy(finfo->crypto_keys, finfo->initial_crypto_keys, 12);
}
while (finfo->uncompressed_position != offset)
{
PHYSFS_uint8 buf[512];
PHYSFS_uint32 maxread;
maxread = (PHYSFS_uint32) (offset - finfo->uncompressed_position);
if (maxread > sizeof (buf))
maxread = sizeof (buf);
if (ZIP_read(_io, buf, maxread) != maxread)
return 0;
}
}
return 1;
}
static PHYSFS_sint64 ZIP_length(PHYSFS_Io *io)
{
const ZIPfileinfo *finfo = (ZIPfileinfo *) io->opaque;
return (PHYSFS_sint64) finfo->entry->uncompressed_size;
}
static PHYSFS_Io *zip_get_io(PHYSFS_Io *io, ZIPinfo *inf, ZIPentry *entry);
static PHYSFS_Io *ZIP_duplicate(PHYSFS_Io *io)
{
ZIPfileinfo *origfinfo = (ZIPfileinfo *) io->opaque;
PHYSFS_Io *retval = (PHYSFS_Io *) allocator.Malloc(sizeof (PHYSFS_Io));
ZIPfileinfo *finfo = (ZIPfileinfo *) allocator.Malloc(sizeof (ZIPfileinfo));
GOTO_IF(!retval, PHYSFS_ERR_OUT_OF_MEMORY, failed);
GOTO_IF(!finfo, PHYSFS_ERR_OUT_OF_MEMORY, failed);
memset(finfo, '\0', sizeof (*finfo));
finfo->entry = origfinfo->entry;
finfo->io = zip_get_io(origfinfo->io, NULL, finfo->entry);
GOTO_IF_ERRPASS(!finfo->io, failed);
initializeZStream(&finfo->stream);
if (finfo->entry->compression_method != COMPMETH_NONE)
{
finfo->buffer = (PHYSFS_uint8 *) allocator.Malloc(ZIP_READBUFSIZE);
GOTO_IF(!finfo->buffer, PHYSFS_ERR_OUT_OF_MEMORY, failed);
if (zlib_err(inflateInit2(&finfo->stream, -MAX_WBITS)) != Z_OK)
goto failed;
}
memcpy(retval, io, sizeof (PHYSFS_Io));
retval->opaque = finfo;
return retval;
failed:
if (finfo != NULL)
{
if (finfo->io != NULL)
finfo->io->destroy(finfo->io);
if (finfo->buffer != NULL)
{
allocator.Free(finfo->buffer);
inflateEnd(&finfo->stream);
}
allocator.Free(finfo);
}
if (retval != NULL)
allocator.Free(retval);
return NULL;
}
static int ZIP_flush(PHYSFS_Io *io) { return 1; }
static void ZIP_destroy(PHYSFS_Io *io)
{
ZIPfileinfo *finfo = (ZIPfileinfo *) io->opaque;
finfo->io->destroy(finfo->io);
if (finfo->entry->compression_method != COMPMETH_NONE)
inflateEnd(&finfo->stream);
if (finfo->buffer != NULL)
allocator.Free(finfo->buffer);
allocator.Free(finfo);
allocator.Free(io);
}
static const PHYSFS_Io ZIP_Io =
{
CURRENT_PHYSFS_IO_API_VERSION, NULL,
ZIP_read,
ZIP_write,
ZIP_seek,
ZIP_tell,
ZIP_length,
ZIP_duplicate,
ZIP_flush,
ZIP_destroy
};
static PHYSFS_sint64 zip_find_end_of_central_dir(PHYSFS_Io *io, PHYSFS_sint64 *len)
{
PHYSFS_uint8 buf[256];
PHYSFS_uint8 extra[4] = { 0, 0, 0, 0 };
PHYSFS_sint32 i = 0;
PHYSFS_sint64 filelen;
PHYSFS_sint64 filepos;
PHYSFS_sint32 maxread;
PHYSFS_sint32 totalread = 0;
int found = 0;
filelen = io->length(io);
BAIL_IF_ERRPASS(filelen == -1, -1);
if (sizeof (buf) < filelen)
{
filepos = filelen - sizeof (buf);
maxread = sizeof (buf);
}
else
{
filepos = 0;
maxread = (PHYSFS_uint32) filelen;
}
while ((totalread < filelen) && (totalread < 65557))
{
BAIL_IF_ERRPASS(!io->seek(io, filepos), -1);
if (totalread != 0)
{
if (!__PHYSFS_readAll(io, buf, maxread - 4))
return -1;
memcpy(&buf[maxread - 4], &extra, sizeof (extra));
totalread += maxread - 4;
}
else
{
if (!__PHYSFS_readAll(io, buf, maxread))
return -1;
totalread += maxread;
}
memcpy(&extra, buf, sizeof (extra));
for (i = maxread - 4; i > 0; i--)
{
if ((buf[i + 0] == 0x50) &&
(buf[i + 1] == 0x4B) &&
(buf[i + 2] == 0x05) &&
(buf[i + 3] == 0x06) )
{
found = 1;
break;
}
}
if (found)
break;
filepos -= (maxread - 4);
if (filepos < 0)
filepos = 0;
}
BAIL_IF(!found, PHYSFS_ERR_UNSUPPORTED, -1);
if (len != NULL)
*len = filelen;
return (filepos + i);
}
static int isZip(PHYSFS_Io *io)
{
PHYSFS_uint32 sig = 0;
int retval = 0;
if (readui32(io, &sig))
{
retval = (sig == ZIP_LOCAL_FILE_SIG);
if (!retval)
{
retval = (zip_find_end_of_central_dir(io, NULL) != -1);
}
}
return retval;
}
static void zip_convert_dos_path(const PHYSFS_uint16 entryversion, char *path)
{
const PHYSFS_uint8 hosttype = (PHYSFS_uint8) ((entryversion >> 8) & 0xFF);
if (hosttype == 0)
{
while (*path)
{
if (*path == '\\')
*path = '/';
path++;
}
}
}
static void zip_expand_symlink_path(char *path)
{
char *ptr = path;
char *prevptr = path;
while (1)
{
ptr = strchr(ptr, '/');
if (ptr == NULL)
break;
if (*(ptr + 1) == '.')
{
if (*(ptr + 2) == '/')
{
memmove(ptr, ptr + 2, strlen(ptr + 2) + 1);
}
else if (*(ptr + 2) == '\0')
{
*ptr = '\0';
}
else if (*(ptr + 2) == '.')
{
if (*(ptr + 3) == '/')
{
memmove(prevptr, ptr + 4, strlen(ptr + 4) + 1);
ptr = prevptr;
while (prevptr != path)
{
prevptr--;
if (*prevptr == '/')
{
prevptr++;
break;
}
}
}
if (*(ptr + 3) == '\0')
{
*prevptr = '\0';
}
}
}
else
{
prevptr = ptr;
ptr++;
}
}
}
static inline ZIPentry *zip_find_entry(ZIPinfo *info, const char *path)
{
return (ZIPentry *) __PHYSFS_DirTreeFind(&info->tree, path);
}
static int zip_resolve(PHYSFS_Io *io, ZIPinfo *info, ZIPentry *entry);
static ZIPentry *zip_follow_symlink(PHYSFS_Io *io, ZIPinfo *info, char *path)
{
ZIPentry *entry;
zip_expand_symlink_path(path);
entry = zip_find_entry(info, path);
if (entry != NULL)
{
if (!zip_resolve(io, info, entry))
entry = NULL;
else
{
if (entry->symlink != NULL)
entry = entry->symlink;
}
}
return entry;
}
static int zip_resolve_symlink(PHYSFS_Io *io, ZIPinfo *info, ZIPentry *entry)
{
const size_t size = (size_t) entry->uncompressed_size;
char *path = NULL;
int rc = 0;
BAIL_IF_ERRPASS(!io->seek(io, entry->offset), 0);
path = (char *) __PHYSFS_smallAlloc(size + 1);
BAIL_IF(!path, PHYSFS_ERR_OUT_OF_MEMORY, 0);
if (entry->compression_method == COMPMETH_NONE)
rc = __PHYSFS_readAll(io, path, size);
else
{
z_stream stream;
const size_t complen = (size_t) entry->compressed_size;
PHYSFS_uint8 *compressed = (PHYSFS_uint8*) __PHYSFS_smallAlloc(complen);
if (compressed != NULL)
{
if (__PHYSFS_readAll(io, compressed, complen))
{
initializeZStream(&stream);
stream.next_in = compressed;
stream.avail_in = (unsigned int) complen;
stream.next_out = (unsigned char *) path;
stream.avail_out = (unsigned int) size;
if (zlib_err(inflateInit2(&stream, -MAX_WBITS)) == Z_OK)
{
rc = zlib_err(inflate(&stream, Z_FINISH));
inflateEnd(&stream);
rc = ((rc == Z_OK) || (rc == Z_STREAM_END));
}
}
__PHYSFS_smallFree(compressed);
}
}
if (rc)
{
path[entry->uncompressed_size] = '\0';
zip_convert_dos_path(entry->version, path);
entry->symlink = zip_follow_symlink(io, info, path);
}
__PHYSFS_smallFree(path);
return (entry->symlink != NULL);
}
static int zip_parse_local(PHYSFS_Io *io, ZIPentry *entry)
{
PHYSFS_uint32 ui32;
PHYSFS_uint16 ui16;
PHYSFS_uint16 fnamelen;
PHYSFS_uint16 extralen;
BAIL_IF_ERRPASS(!io->seek(io, entry->offset), 0);
BAIL_IF_ERRPASS(!readui32(io, &ui32), 0);
BAIL_IF(ui32 != ZIP_LOCAL_FILE_SIG, PHYSFS_ERR_CORRUPT, 0);
BAIL_IF_ERRPASS(!readui16(io, &ui16), 0);
BAIL_IF(ui16 != entry->version_needed, PHYSFS_ERR_CORRUPT, 0);
BAIL_IF_ERRPASS(!readui16(io, &ui16), 0);
BAIL_IF_ERRPASS(!readui16(io, &ui16), 0);
BAIL_IF(ui16 != entry->compression_method, PHYSFS_ERR_CORRUPT, 0);
BAIL_IF_ERRPASS(!readui32(io, &ui32), 0);
BAIL_IF_ERRPASS(!readui32(io, &ui32), 0);
BAIL_IF(ui32 && (ui32 != entry->crc), PHYSFS_ERR_CORRUPT, 0);
BAIL_IF_ERRPASS(!readui32(io, &ui32), 0);
BAIL_IF(ui32 && (ui32 != 0xFFFFFFFF) &&
(ui32 != entry->compressed_size), PHYSFS_ERR_CORRUPT, 0);
BAIL_IF_ERRPASS(!readui32(io, &ui32), 0);
BAIL_IF(ui32 && (ui32 != 0xFFFFFFFF) &&
(ui32 != entry->uncompressed_size), PHYSFS_ERR_CORRUPT, 0);
BAIL_IF_ERRPASS(!readui16(io, &fnamelen), 0);
BAIL_IF_ERRPASS(!readui16(io, &extralen), 0);
entry->offset += fnamelen + extralen + 30;
return 1;
}
static int zip_resolve(PHYSFS_Io *io, ZIPinfo *info, ZIPentry *entry)
{
int retval = 1;
const ZipResolveType resolve_type = entry->resolved;
if (resolve_type == ZIP_DIRECTORY)
return 1;
BAIL_IF(resolve_type == ZIP_BROKEN_FILE, PHYSFS_ERR_CORRUPT, 0);
BAIL_IF(resolve_type == ZIP_BROKEN_SYMLINK, PHYSFS_ERR_CORRUPT, 0);
BAIL_IF(resolve_type == ZIP_RESOLVING, PHYSFS_ERR_SYMLINK_LOOP, 0);
if (resolve_type != ZIP_RESOLVED)
{
if (entry->tree.isdir)
{
entry->resolved = ZIP_DIRECTORY;
return 1;
}
retval = zip_parse_local(io, entry);
if (retval)
{
if (resolve_type == ZIP_UNRESOLVED_SYMLINK)
retval = zip_resolve_symlink(io, info, entry);
}
if (resolve_type == ZIP_UNRESOLVED_SYMLINK)
entry->resolved = ((retval) ? ZIP_RESOLVED : ZIP_BROKEN_SYMLINK);
else if (resolve_type == ZIP_UNRESOLVED_FILE)
entry->resolved = ((retval) ? ZIP_RESOLVED : ZIP_BROKEN_FILE);
}
return retval;
}
static int zip_entry_is_symlink(const ZIPentry *entry)
{
return ((entry->resolved == ZIP_UNRESOLVED_SYMLINK) ||
(entry->resolved == ZIP_BROKEN_SYMLINK) ||
(entry->symlink));
}
static int zip_version_does_symlinks(PHYSFS_uint32 version)
{
int retval = 0;
PHYSFS_uint8 hosttype = (PHYSFS_uint8) ((version >> 8) & 0xFF);
switch (hosttype)
{
case 0:
case 1:
case 2:
case 4:
case 6:
case 11:
case 14:
case 13:
case 15:
case 18:
break;
default:
retval = 1;
break;
}
return retval;
}
static inline int zip_has_symlink_attr(const ZIPentry *entry,
const PHYSFS_uint32 extern_attr)
{
PHYSFS_uint16 xattr = ((extern_attr >> 16) & 0xFFFF);
return ( (zip_version_does_symlinks(entry->version)) &&
(entry->uncompressed_size > 0) &&
((xattr & UNIX_FILETYPE_MASK) == UNIX_FILETYPE_SYMLINK) );
}
static PHYSFS_sint64 zip_dos_time_to_physfs_time(PHYSFS_uint32 dostime)
{
PHYSFS_uint32 dosdate;
struct tm unixtime;
memset(&unixtime, '\0', sizeof (unixtime));
dosdate = (PHYSFS_uint32) ((dostime >> 16) & 0xFFFF);
dostime &= 0xFFFF;
unixtime.tm_year = ((dosdate >> 9) & 0x7F) + 80;
unixtime.tm_mon = ((dosdate >> 5) & 0x0F) - 1;
unixtime.tm_mday = ((dosdate ) & 0x1F);
unixtime.tm_hour = ((dostime >> 11) & 0x1F);
unixtime.tm_min = ((dostime >> 5) & 0x3F);
unixtime.tm_sec = ((dostime << 1) & 0x3E);
unixtime.tm_isdst = -1;
return ((PHYSFS_sint64) mktime(&unixtime));
}
static ZIPentry *zip_load_entry(ZIPinfo *info, const int zip64,
const PHYSFS_uint64 ofs_fixup)
{
PHYSFS_Io *io = info->io;
ZIPentry entry;
ZIPentry *retval = NULL;
PHYSFS_uint16 fnamelen, extralen, commentlen;
PHYSFS_uint32 external_attr;
PHYSFS_uint32 starting_disk;
PHYSFS_uint64 offset;
PHYSFS_uint16 ui16;
PHYSFS_uint32 ui32;
PHYSFS_sint64 si64;
char *name = NULL;
int isdir = 0;
BAIL_IF_ERRPASS(!readui32(io, &ui32), NULL);
BAIL_IF(ui32 != ZIP_CENTRAL_DIR_SIG, PHYSFS_ERR_CORRUPT, NULL);
memset(&entry, '\0', sizeof (entry));
BAIL_IF_ERRPASS(!readui16(io, &entry.version), NULL);
BAIL_IF_ERRPASS(!readui16(io, &entry.version_needed), NULL);
BAIL_IF_ERRPASS(!readui16(io, &entry.general_bits), NULL);
BAIL_IF_ERRPASS(!readui16(io, &entry.compression_method), NULL);
BAIL_IF_ERRPASS(!readui32(io, &entry.dos_mod_time), NULL);
entry.last_mod_time = zip_dos_time_to_physfs_time(entry.dos_mod_time);
BAIL_IF_ERRPASS(!readui32(io, &entry.crc), NULL);
BAIL_IF_ERRPASS(!readui32(io, &ui32), NULL);
entry.compressed_size = (PHYSFS_uint64) ui32;
BAIL_IF_ERRPASS(!readui32(io, &ui32), NULL);
entry.uncompressed_size = (PHYSFS_uint64) ui32;
BAIL_IF_ERRPASS(!readui16(io, &fnamelen), NULL);
BAIL_IF_ERRPASS(!readui16(io, &extralen), NULL);
BAIL_IF_ERRPASS(!readui16(io, &commentlen), NULL);
BAIL_IF_ERRPASS(!readui16(io, &ui16), NULL);
starting_disk = (PHYSFS_uint32) ui16;
BAIL_IF_ERRPASS(!readui16(io, &ui16), NULL);
BAIL_IF_ERRPASS(!readui32(io, &external_attr), NULL);
BAIL_IF_ERRPASS(!readui32(io, &ui32), NULL);
offset = (PHYSFS_uint64) ui32;
name = (char *) __PHYSFS_smallAlloc(fnamelen + 1);
BAIL_IF(!name, PHYSFS_ERR_OUT_OF_MEMORY, NULL);
if (!__PHYSFS_readAll(io, name, fnamelen))
{
__PHYSFS_smallFree(name);
return NULL;
}
if (name[fnamelen - 1] == '/')
{
name[fnamelen - 1] = '\0';
isdir = 1;
}
name[fnamelen] = '\0';
zip_convert_dos_path(entry.version, name);
retval = (ZIPentry *) __PHYSFS_DirTreeAdd(&info->tree, name, isdir);
__PHYSFS_smallFree(name);
BAIL_IF(!retval, PHYSFS_ERR_OUT_OF_MEMORY, NULL);
BAIL_IF(retval->last_mod_time != 0, PHYSFS_ERR_CORRUPT, NULL);
memcpy(((PHYSFS_uint8 *) retval) + sizeof (__PHYSFS_DirTreeEntry),
((PHYSFS_uint8 *) &entry) + sizeof (__PHYSFS_DirTreeEntry),
sizeof (*retval) - sizeof (__PHYSFS_DirTreeEntry));
retval->symlink = NULL;
if (isdir)
retval->resolved = ZIP_DIRECTORY;
else
{
retval->resolved = (zip_has_symlink_attr(retval, external_attr)) ?
ZIP_UNRESOLVED_SYMLINK : ZIP_UNRESOLVED_FILE;
}
si64 = io->tell(io);
BAIL_IF_ERRPASS(si64 == -1, NULL);
if ( (zip64) &&
((offset == 0xFFFFFFFF) ||
(starting_disk == 0xFFFFFFFF) ||
(retval->compressed_size == 0xFFFFFFFF) ||
(retval->uncompressed_size == 0xFFFFFFFF)) )
{
int found = 0;
PHYSFS_uint16 sig = 0;
PHYSFS_uint16 len = 0;
while (extralen > 4)
{
BAIL_IF_ERRPASS(!readui16(io, &sig), NULL);
BAIL_IF_ERRPASS(!readui16(io, &len), NULL);
si64 += 4 + len;
extralen -= 4 + len;
if (sig != ZIP64_EXTENDED_INFO_EXTRA_FIELD_SIG)
{
BAIL_IF_ERRPASS(!io->seek(io, si64), NULL);
continue;
}
found = 1;
break;
}
BAIL_IF(!found, PHYSFS_ERR_CORRUPT, NULL);
if (retval->uncompressed_size == 0xFFFFFFFF)
{
BAIL_IF(len < 8, PHYSFS_ERR_CORRUPT, NULL);
BAIL_IF_ERRPASS(!readui64(io, &retval->uncompressed_size), NULL);
len -= 8;
}
if (retval->compressed_size == 0xFFFFFFFF)
{
BAIL_IF(len < 8, PHYSFS_ERR_CORRUPT, NULL);
BAIL_IF_ERRPASS(!readui64(io, &retval->compressed_size), NULL);
len -= 8;
}
if (offset == 0xFFFFFFFF)
{
BAIL_IF(len < 8, PHYSFS_ERR_CORRUPT, NULL);
BAIL_IF_ERRPASS(!readui64(io, &offset), NULL);
len -= 8;
}
if (starting_disk == 0xFFFFFFFF)
{
BAIL_IF(len < 8, PHYSFS_ERR_CORRUPT, NULL);
BAIL_IF_ERRPASS(!readui32(io, &starting_disk), NULL);
len -= 4;
}
BAIL_IF(len != 0, PHYSFS_ERR_CORRUPT, NULL);
}
BAIL_IF(starting_disk != 0, PHYSFS_ERR_CORRUPT, NULL);
retval->offset = offset + ofs_fixup;
BAIL_IF_ERRPASS(!io->seek(io, si64 + extralen + commentlen), NULL);
return retval;
}
static int zip_load_entries(ZIPinfo *info,
const PHYSFS_uint64 data_ofs,
const PHYSFS_uint64 central_ofs,
const PHYSFS_uint64 entry_count)
{
PHYSFS_Io *io = info->io;
const int zip64 = info->zip64;
PHYSFS_uint64 i;
BAIL_IF_ERRPASS(!io->seek(io, central_ofs), 0);
for (i = 0; i < entry_count; i++)
{
ZIPentry *entry = zip_load_entry(info, zip64, data_ofs);
BAIL_IF_ERRPASS(!entry, 0);
if (zip_entry_is_tradional_crypto(entry))
info->has_crypto = 1;
}
return 1;
}
static PHYSFS_sint64 zip64_find_end_of_central_dir(PHYSFS_Io *io,
PHYSFS_sint64 _pos,
PHYSFS_uint64 offset)
{
PHYSFS_uint32 ui32;
const PHYSFS_uint64 pos = (PHYSFS_uint64) _pos;
assert(_pos > 0);
BAIL_IF_ERRPASS(!io->seek(io, offset), -1);
BAIL_IF_ERRPASS(!readui32(io, &ui32), -1);
if (ui32 == ZIP64_END_OF_CENTRAL_DIR_SIG)
return offset;
if (pos > 56)
{
BAIL_IF_ERRPASS(!io->seek(io, pos-56), -1);
BAIL_IF_ERRPASS(!readui32(io, &ui32), -1);
if (ui32 == ZIP64_END_OF_CENTRAL_DIR_SIG)
return pos-56;
}
if (pos > 84)
{
BAIL_IF_ERRPASS(!io->seek(io, pos-84), -1);
BAIL_IF_ERRPASS(!readui32(io, &ui32), -1);
if (ui32 == ZIP64_END_OF_CENTRAL_DIR_SIG)
return pos-84;
}
if ((offset < pos) && (pos > 4))
{
const size_t maxbuflen = 256 * 1024;
size_t len = (size_t) (pos - offset);
PHYSFS_uint8 *buf = NULL;
PHYSFS_sint32 i;
if (len > maxbuflen)
len = maxbuflen;
buf = (PHYSFS_uint8 *) __PHYSFS_smallAlloc(len);
BAIL_IF(!buf, PHYSFS_ERR_OUT_OF_MEMORY, -1);
if (!io->seek(io, pos - len) || !__PHYSFS_readAll(io, buf, len))
{
__PHYSFS_smallFree(buf);
return -1;
}
for (i = (PHYSFS_sint32) (len - 4); i >= 0; i--)
{
if ( (buf[i] == 0x50) && (buf[i+1] == 0x4b) &&
(buf[i+2] == 0x06) && (buf[i+3] == 0x06) )
{
__PHYSFS_smallFree(buf);
return pos - ((PHYSFS_sint64) (len - i));
}
}
__PHYSFS_smallFree(buf);
}
BAIL(PHYSFS_ERR_CORRUPT, -1);
}
static int zip64_parse_end_of_central_dir(ZIPinfo *info,
PHYSFS_uint64 *data_start,
PHYSFS_uint64 *dir_ofs,
PHYSFS_uint64 *entry_count,
PHYSFS_sint64 pos)
{
PHYSFS_Io *io = info->io;
PHYSFS_uint64 ui64;
PHYSFS_uint32 ui32;
PHYSFS_uint16 ui16;
if ((pos < 0) || (!io->seek(io, pos)))
return 0;
BAIL_IF_ERRPASS(!readui32(io, &ui32), 0);
if (ui32 != ZIP64_END_OF_CENTRAL_DIRECTORY_LOCATOR_SIG)
return -1;
info->zip64 = 1;
BAIL_IF_ERRPASS(!readui32(io, &ui32), 0);
BAIL_IF(ui32 != 0, PHYSFS_ERR_CORRUPT, 0);
BAIL_IF_ERRPASS(!readui64(io, &ui64), 0);
BAIL_IF_ERRPASS(!readui32(io, &ui32), 0);
BAIL_IF(ui32 != 1, PHYSFS_ERR_CORRUPT, 0);
pos = zip64_find_end_of_central_dir(io, pos, ui64);
if (pos < 0)
return 0;
assert(((PHYSFS_uint64) pos) >= ui64);
*data_start = ((PHYSFS_uint64) pos) - ui64;
BAIL_IF_ERRPASS(!io->seek(io, pos), 0);
BAIL_IF_ERRPASS(!readui32(io, &ui32), 0);
BAIL_IF(ui32 != ZIP64_END_OF_CENTRAL_DIR_SIG, PHYSFS_ERR_CORRUPT, 0);
BAIL_IF_ERRPASS(!readui64(io, &ui64), 0);
BAIL_IF_ERRPASS(!readui16(io, &ui16), 0);
BAIL_IF_ERRPASS(!readui16(io, &ui16), 0);
BAIL_IF_ERRPASS(!readui32(io, &ui32), 0);
BAIL_IF(ui32 != 0, PHYSFS_ERR_CORRUPT, 0);
BAIL_IF_ERRPASS(!readui32(io, &ui32), 0);
BAIL_IF(ui32 != 0, PHYSFS_ERR_CORRUPT, 0);
BAIL_IF_ERRPASS(!readui64(io, &ui64), 0);
BAIL_IF_ERRPASS(!readui64(io, entry_count), 0);
BAIL_IF(ui64 != *entry_count, PHYSFS_ERR_CORRUPT, 0);
BAIL_IF_ERRPASS(!readui64(io, &ui64), 0);
BAIL_IF_ERRPASS(!readui64(io, dir_ofs), 0);
*dir_ofs += *data_start;
return 1;
}
static int zip_parse_end_of_central_dir(ZIPinfo *info,
PHYSFS_uint64 *data_start,
PHYSFS_uint64 *dir_ofs,
PHYSFS_uint64 *entry_count)
{
PHYSFS_Io *io = info->io;
PHYSFS_uint16 entryCount16;
PHYSFS_uint32 offset32;
PHYSFS_uint32 ui32;
PHYSFS_uint16 ui16;
PHYSFS_sint64 len;
PHYSFS_sint64 pos;
int rc;
pos = zip_find_end_of_central_dir(io, &len);
BAIL_IF_ERRPASS(pos == -1, 0);
BAIL_IF_ERRPASS(!io->seek(io, pos), 0);
BAIL_IF_ERRPASS(!readui32(io, &ui32), 0);
BAIL_IF(ui32 != ZIP_END_OF_CENTRAL_DIR_SIG, PHYSFS_ERR_CORRUPT, 0);
rc = zip64_parse_end_of_central_dir(info, data_start, dir_ofs,
entry_count, pos - 20);
if ((rc == 0) || (rc == 1))
return rc;
assert(rc == -1);
BAIL_IF_ERRPASS(!io->seek(io, pos + 4), 0);
BAIL_IF_ERRPASS(!readui16(io, &ui16), 0);
BAIL_IF(ui16 != 0, PHYSFS_ERR_CORRUPT, 0);
BAIL_IF_ERRPASS(!readui16(io, &ui16), 0);
BAIL_IF(ui16 != 0, PHYSFS_ERR_CORRUPT, 0);
BAIL_IF_ERRPASS(!readui16(io, &ui16), 0);
BAIL_IF_ERRPASS(!readui16(io, &entryCount16), 0);
BAIL_IF(ui16 != entryCount16, PHYSFS_ERR_CORRUPT, 0);
*entry_count = entryCount16;
BAIL_IF_ERRPASS(!readui32(io, &ui32), 0);
BAIL_IF_ERRPASS(!readui32(io, &offset32), 0);
*dir_ofs = (PHYSFS_uint64) offset32;
BAIL_IF(((PHYSFS_uint64) pos) < (*dir_ofs + ui32), PHYSFS_ERR_CORRUPT, 0);
*data_start = (PHYSFS_uint64) (pos - (*dir_ofs + ui32));
*dir_ofs += *data_start;
BAIL_IF_ERRPASS(!readui16(io, &ui16), 0);
BAIL_IF((pos + 22 + ui16) != len, PHYSFS_ERR_CORRUPT, 0);
return 1;
}
static void ZIP_closeArchive(void *opaque)
{
ZIPinfo *info = (ZIPinfo *) (opaque);
if (!info)
return;
if (info->io)
info->io->destroy(info->io);
__PHYSFS_DirTreeDeinit(&info->tree);
allocator.Free(info);
}
static void *ZIP_openArchive(PHYSFS_Io *io, const char *name,
int forWriting, int *claimed)
{
ZIPinfo *info = NULL;
ZIPentry *root = NULL;
PHYSFS_uint64 dstart = 0;
PHYSFS_uint64 cdir_ofs;
PHYSFS_uint64 count;
assert(io != NULL);
BAIL_IF(forWriting, PHYSFS_ERR_READ_ONLY, NULL);
BAIL_IF_ERRPASS(!isZip(io), NULL);
*claimed = 1;
info = (ZIPinfo *) allocator.Malloc(sizeof (ZIPinfo));
BAIL_IF(!info, PHYSFS_ERR_OUT_OF_MEMORY, NULL);
memset(info, '\0', sizeof (ZIPinfo));
info->io = io;
if (!zip_parse_end_of_central_dir(info, &dstart, &cdir_ofs, &count))
goto ZIP_openarchive_failed;
else if (!__PHYSFS_DirTreeInit(&info->tree, sizeof (ZIPentry)))
goto ZIP_openarchive_failed;
root = (ZIPentry *) info->tree.root;
root->resolved = ZIP_DIRECTORY;
if (!zip_load_entries(info, dstart, cdir_ofs, count))
goto ZIP_openarchive_failed;
assert(info->tree.root->sibling == NULL);
return info;
ZIP_openarchive_failed:
info->io = NULL;
ZIP_closeArchive(info);
return NULL;
}
static PHYSFS_Io *zip_get_io(PHYSFS_Io *io, ZIPinfo *inf, ZIPentry *entry)
{
int success;
PHYSFS_Io *retval = io->duplicate(io);
BAIL_IF_ERRPASS(!retval, NULL);
assert(!entry->tree.isdir);
success = (inf == NULL) || zip_resolve(retval, inf, entry);
if (success)
{
PHYSFS_sint64 offset;
offset = ((entry->symlink) ? entry->symlink->offset : entry->offset);
success = retval->seek(retval, offset);
}
if (!success)
{
retval->destroy(retval);
retval = NULL;
}
return retval;
}
static PHYSFS_Io *ZIP_openRead(void *opaque, const char *filename)
{
PHYSFS_Io *retval = NULL;
ZIPinfo *info = (ZIPinfo *) opaque;
ZIPentry *entry = zip_find_entry(info, filename);
ZIPfileinfo *finfo = NULL;
PHYSFS_Io *io = NULL;
PHYSFS_uint8 *password = NULL;
if ((!entry) && (info->has_crypto))
{
const char *ptr = strrchr(filename, '$');
if (ptr != NULL)
{
const size_t len = (size_t) (ptr - filename);
char *str = (char *) __PHYSFS_smallAlloc(len + 1);
BAIL_IF(!str, PHYSFS_ERR_OUT_OF_MEMORY, NULL);
memcpy(str, filename, len);
str[len] = '\0';
entry = zip_find_entry(info, str);
__PHYSFS_smallFree(str);
password = (PHYSFS_uint8 *) (ptr + 1);
}
}
BAIL_IF_ERRPASS(!entry, NULL);
BAIL_IF_ERRPASS(!zip_resolve(info->io, info, entry), NULL);
BAIL_IF(entry->tree.isdir, PHYSFS_ERR_NOT_A_FILE, NULL);
retval = (PHYSFS_Io *) allocator.Malloc(sizeof (PHYSFS_Io));
GOTO_IF(!retval, PHYSFS_ERR_OUT_OF_MEMORY, ZIP_openRead_failed);
finfo = (ZIPfileinfo *) allocator.Malloc(sizeof (ZIPfileinfo));
GOTO_IF(!finfo, PHYSFS_ERR_OUT_OF_MEMORY, ZIP_openRead_failed);
memset(finfo, '\0', sizeof (ZIPfileinfo));
io = zip_get_io(info->io, info, entry);
GOTO_IF_ERRPASS(!io, ZIP_openRead_failed);
finfo->io = io;
finfo->entry = ((entry->symlink != NULL) ? entry->symlink : entry);
initializeZStream(&finfo->stream);
if (finfo->entry->compression_method != COMPMETH_NONE)
{
finfo->buffer = (PHYSFS_uint8 *) allocator.Malloc(ZIP_READBUFSIZE);
if (!finfo->buffer)
GOTO(PHYSFS_ERR_OUT_OF_MEMORY, ZIP_openRead_failed);
else if (zlib_err(inflateInit2(&finfo->stream, -MAX_WBITS)) != Z_OK)
goto ZIP_openRead_failed;
}
if (!zip_entry_is_tradional_crypto(entry))
GOTO_IF(password != NULL, PHYSFS_ERR_BAD_PASSWORD, ZIP_openRead_failed);
else
{
PHYSFS_uint8 crypto_header[12];
GOTO_IF(password == NULL, PHYSFS_ERR_BAD_PASSWORD, ZIP_openRead_failed);
if (io->read(io, crypto_header, 12) != 12)
goto ZIP_openRead_failed;
else if (!zip_prep_crypto_keys(finfo, crypto_header, password))
goto ZIP_openRead_failed;
}
memcpy(retval, &ZIP_Io, sizeof (PHYSFS_Io));
retval->opaque = finfo;
return retval;
ZIP_openRead_failed:
if (finfo != NULL)
{
if (finfo->io != NULL)
finfo->io->destroy(finfo->io);
if (finfo->buffer != NULL)
{
allocator.Free(finfo->buffer);
inflateEnd(&finfo->stream);
}
allocator.Free(finfo);
}
if (retval != NULL)
allocator.Free(retval);
return NULL;
}
static PHYSFS_Io *ZIP_openWrite(void *opaque, const char *filename)
{
BAIL(PHYSFS_ERR_READ_ONLY, NULL);
}
static PHYSFS_Io *ZIP_openAppend(void *opaque, const char *filename)
{
BAIL(PHYSFS_ERR_READ_ONLY, NULL);
}
static int ZIP_remove(void *opaque, const char *name)
{
BAIL(PHYSFS_ERR_READ_ONLY, 0);
}
static int ZIP_mkdir(void *opaque, const char *name)
{
BAIL(PHYSFS_ERR_READ_ONLY, 0);
}
static int ZIP_stat(void *opaque, const char *filename, PHYSFS_Stat *stat)
{
ZIPinfo *info = (ZIPinfo *) opaque;
ZIPentry *entry = zip_find_entry(info, filename);
if (entry == NULL)
return 0;
else if (!zip_resolve(info->io, info, entry))
return 0;
else if (entry->resolved == ZIP_DIRECTORY)
{
stat->filesize = 0;
stat->filetype = PHYSFS_FILETYPE_DIRECTORY;
}
else if (zip_entry_is_symlink(entry))
{
stat->filesize = 0;
stat->filetype = PHYSFS_FILETYPE_SYMLINK;
}
else
{
stat->filesize = (PHYSFS_sint64) entry->uncompressed_size;
stat->filetype = PHYSFS_FILETYPE_REGULAR;
}
stat->modtime = ((entry) ? entry->last_mod_time : 0);
stat->createtime = stat->modtime;
stat->accesstime = -1;
stat->readonly = 1;
return 1;
}
const PHYSFS_Archiver __PHYSFS_Archiver_ZIP =
{
CURRENT_PHYSFS_ARCHIVER_API_VERSION,
{
"ZIP",
"PkZip/WinZip/Info-Zip compatible",
"Ryan C. Gordon <icculus@icculus.org>",
"https://icculus.org/physfs/",
1,
},
ZIP_openArchive,
__PHYSFS_DirTreeEnumerate,
ZIP_openRead,
ZIP_openWrite,
ZIP_openAppend,
ZIP_remove,
ZIP_mkdir,
ZIP_stat,
ZIP_closeArchive
};
#endif